JP3874840B2 - Multipolar spark plug - Google Patents

Multipolar spark plug Download PDF

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Publication number
JP3874840B2
JP3874840B2 JP14691796A JP14691796A JP3874840B2 JP 3874840 B2 JP3874840 B2 JP 3874840B2 JP 14691796 A JP14691796 A JP 14691796A JP 14691796 A JP14691796 A JP 14691796A JP 3874840 B2 JP3874840 B2 JP 3874840B2
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tip
diameter portion
center electrode
spark plug
electrode
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JP14691796A
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JPH09330783A (en
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孝三 天野
佳弘 松原
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NGK Spark Plug Co Ltd
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NGK Spark Plug Co Ltd
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Description

【0001】
【発明の属する技術分野】
本発明は、内燃機関に装着する多極スパークプラグに関する。
【0002】
【従来の技術】
図9に示す様に、主体金具101と、主体金具101内に固定される軸孔102付の絶縁碍子103と、絶縁碍子103の軸孔102内に固定される中心電極104と、放電面105が中心電極104の先端外周面106と対向する複数の外側電極107とを備えた多極スパークプラグ100が従来より知られている。又、図10に示す様に、中心電極104の発火部に貴金属合金部108を形成して電極消耗を防止した多極スパークプラグ120も知られている。
【0003】
【発明が解決しようとする課題】
放電面105が中心電極104の先端外周面106と対向する外側電極107を有する多極スパークプラグ100、110(外側電極107の先端上面107aと中心電極104との軸方向距離kが−0.5mm〜0.5mm)において、火花放電は、放電面前側109と先端外周面106の先部111との間(放電パターンα)以外にも、放電面後側112と先端外周面106の基部113側との間(放電パターンβ)でも起こる。
【0004】
上記放電パターンβの放電は、外側電極107による消炎作用が大きく、放電パターンαの放電に比べて着火性が著しく悪化(A/Fリーンリミットの評価で約1ダウン)する。
A/Fリーンリミット:
アイドリング時に失火サイクル10回/3分間 1cyl以上となるA/F値
【0005】
本発明の目的は、放電面が中心電極の先端外周面と対向する複数の外側電極を有する多極スパークプラグの着火性を向上させることにある。
【0006】
【課題を解決するための手段】
上記課題を解決する為、本発明は、以下の構成を採用した。
(1)筒状の主体金具と、碍子先端が前記主体金具の金具先端面から突出する様に主体金具内に固定される軸孔付の絶縁碍子と、該絶縁碍子の碍子先端面から電極先端が突出する様に軸孔内に固定される中心電極と、放電面が前記中心電極の先端外周面と対向する様に屈曲して前記金具先端面に突設される複数の外側電極とを備え、該外側電極の先端上面と中心電極先端面との軸方向距離を−0.5mm〜0.5mmに設定した多極スパークプラグにおいて、中心電極先端を全周にわたり径大に形成して、前記放電面と、この径大部の外周面との間で火花放電を行うようにし、この径大部の外径dを、中心電極外径dより0.2mm〜1.0mm大きく設定し、{(径大部の厚みT)/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、前記径大部の後端位置は、前記放電面の軸方向における形成位置に位置し、前記径大部は、前記碍子先端面から先端方向に離間して形成される
【0008】
)多極スパークプラグは、上記(1)の構成を有し、前記径大部は、自身の先端面を前記中心電極の先端面及び前記外側電極の先端上面と面一とする。
)筒状の主体金具と、碍子先端が前記主体金具の金具先端面から突出する様に主体金具内に固定される軸孔付の絶縁碍子と、該絶縁碍子の碍子先端面から電極先端が突出する様に軸孔内に固定される中心電極と、放電面が前記中心電極の先端外周面と対向する様に屈曲して前記金具先端面に突設される複数の外側電極とを備え、該外側電極の先端上面と中心電極先端面との軸方向距離を−0.5mm〜0.5mmに設定した多極スパークプラグにおいて、中心電極先端を先に行くほど全周にわたり径大になる様なテーパ形状の径大部に形成して、前記放電面と、このテーパの外周面との間にて火花放電を行うようにし、
この径大部の外径dを、中心電極外径dより0.2mm〜1.0mm大きく設定し、
{(径大部の厚みT)/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、前記テーパの後端位置は、前記放電面の軸方向における形成位置に位置し、前記径大部は、前記碍子先端面から先端方向に離間して形成される。
(4)多極スパークプラグは、上記(3)の構成を有し、前記径大部は、自身の先端面を前記中心電極の先端面及び前記外側電極の先端上面と面一とする。
)多極スパークプラグは、上記(1)〜()の何れかの構成を有し、前記径大部を貴金属で形成した。
【0009】
【作用および発明の効果】
〔請求項1について〕
中心電極先端を全周にわたり径大に形成して、放電面と、この径大部の外周面との間で火花放電を行うようにし、この径大部の外径dを、中心電極外径dより0.2mm〜1.0mm大きく設定し、{(径大部の厚みT)/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、径大部の後端位置は、放電面の軸方向における形成位置に位置している。また、径大部は、碍子先端面から先端方向に離間して形成される。
(T/L)≦0.3の状態で、(径大部の外径d−中心電極外径d)≧0.2mmとし、且つ、径大部の後端位置が、放電面の軸方向における形成位置に位置しているので、外側電極の放電面と、中心電極に形成した先端の径大部の外周面との間で気中放電を行えることから、A/Fリーンリミットが改善(約1改善)される。
又、(径大部の外径d−中心電極外径d)>1mmであると、径大部(中心電極先端)の温度が高くなり、酸化消耗が大になるので不向きである。
【0011】
〔請求項について〕
径大部は、自身の先端面を中心電極の先端面及び外側電極の先端上面と面一としている。
〔請求項について〕
中心電極先端を先に行くほど全周にわたり径大になる様なテーパ形状の径大部に形成して、放電面と、このテーパの外周面との間にて火花放電を行うようにし、この径大部の外径dを、中心電極外径dより0.2mm〜1.0mm大きく設定し、{(径大部の厚みT)/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、テーパの後端位置は、放電面の軸方向における形成位置に位置している。また、径大部は、碍子先端面から先端方向に離間して形成される。
(T/L)≦0.3の状態で、(径大部の外径d−中心電極外径d)≧0.2mmとし、且つ、テーパの後端位置が、放電面の軸方向における形成位置に位置しているので、外側電極の放電面と、テーパの外周面との間で気中放電を行えることから、A/Fリーンリミットが改善(約1改善)される。
又、(径大部の外径d −中心電極外径d)>1mmであると、径大部(中心電極先端)の温度が高くなり、酸化消耗が大になるので不向きである
請求項について〕
径大部は、自身の先端面を中心電極の先端面及び外側電極の先端上面と面一としている。
〔請求項について〕
幅の狭い径大部を中心電極先端に形成することにより、径大部を設けない場合に比べ耐久性が低下(電極消耗大)する。
しかし、径大部を貴金属で形成することにより、耐久性が改善される。
【0012】
【発明の実施の形態】
本発明の第1実施例(請求項1、2対応)を図1〜図4に基づいて説明する。
二極スパークプラグAは、筒状の主体金具1と、主体金具1内に嵌め込まれて固定される軸孔21付の絶縁碍子2と、径大部31を有する中心電極先端32が碍子先端面22から突出する様に軸孔21内に固定される中心電極3と、放電面41が中心電極3の先端外周面321と対向する様に、屈曲して金具先端面11に突設される外側電極4、4とを備える。
【0013】
主体金具1は、低炭素鋼で製造され、外側電極4、4を金具先端面11に溶接している。又、主体金具1の先端外周にはネジ12が螺刻され、ガスケット(図示せず)を介して内燃機関のシリンダヘッド(図示せず)に装着される。
【0014】
絶縁碍子2は、アルミナを主体とするセラミックで製造され、パッキン(図示せず)を介して座面を主体金具1の段部(図示せず)に係止し、主体金具1の六角頭部(図示せず)を加締める事により、主体金具1の金具先端面11から碍子先端部23が突出する様に主体金具1内に固定される。
【0015】
ニッケル合金材の内部に良熱伝導性の銅を封入した中心電極3は、厚みT1 =0.4mm、外径d2 =φ2.5の径大部31(円柱形状)を中心電極先端32に形成している。尚、径大部31以外の中心電極外径d1 はφ2.0である。
又、径大部31の外径d2 をφ2.5、径大部の厚みT1 を0.4mmと一定にし、径差{(径大部31の外径d2 −中心電極外径d1 )}を0mm〜1.3mmの間で変化させたところ、図2に示す様に、径差0.2mm以上でA/Fリーンリミットが約0.5改善されることが判明した。
但し、径差が1.0mmを越える(本実施例ではφd1 <1.5mm)になると、図3に示す様に、径大部31の温度が高くなってギャップ消耗量が大きくなる(酸化消耗大)ので、0.2mm〜1.0mmの範囲に径差を設定する。
【0016】
外側電極4は、先端がL字状に屈曲し、ニッケル合金材で形成されている。
外側電極4の放電面41は、円弧面状に形成され、対向する先端外周面321と同軸的に位置する。
又、本実施例では、外側電極4の先端上面42と中心電極先端面33とが面一(軸方向距離k=0mm)に設定されている。
【0017】
本実施例では、{(径大部の厚みT1 )/(放電面の軸方向距離L)}≒0.27に設定されている。
尚、放電面の軸方向距離Lを1.5mm一定とし、径大部の厚みT1 を1.5mm〜0.3mm{(T1 /L)を1〜0.2}まで変化させて着火性を試験したところ、図4に示す様に、(T1 /L)≦0.3でA/Fリーンリミットが約1改善されることが判明した。
【0018】
本実施例の二極スパークプラグAは、以下の利点を有する。
二極スパークプラグAは、中心電極先端32を径大に形成し、この径大部31の外径d2 (φ2.5)を、中心電極外径d1 (φ2.0)より0.5mm大きく設定し、{(径大部31の厚みT1 (0.4mm)}/{放電面の軸方向距離L(1.5mm)}を約0.27に設定している。
これにより、火花放電が放電面前側411と径大部31との間で起こるので、A/Fリーンリミットが約1改善され、着火性が良好に保持されることが判明した。
又、径差が0.5mmであるので、径大部(中心電極先端)の温度が著しく高くならないので火花放電による電極先端部の消耗が少なく、二極スパークプラグAは、径大部31を設けたことによる、中心電極3の耐火花消耗性の低下は殆ど無い。
【0019】
本発明の第2実施例(請求項3、4に対応)を図5に基づいて説明する。
二極スパークプラグBは、以下の点が二極スパークプラグAと異なる。
【0020】
先に行くほど径大になる様に円錐状の径大部34を中心電極先端32に形成している。尚、中心電極外径d1 はφ2であり、径大部34の厚みT2 は0.4mm、外径d3 はφ2.5である。
【0021】
本実施例の二極スパークプラグBは、以下の利点を有する。
二極スパークプラグBは、先に行くほど径大になる様に円錐状の径大部34を中心電極先端32に形成している。
これにより、火花放電が放電面前側411と径大部34との間で起こるので、A/Fリーンリミットが約1改善され、着火性が良好に保持されることが判明した。
又、径差(φd2 −φd1 )が0.5mmであるので、径大部(中心電極先端)の温度が著しく高くならないので火花放電による電極先端部の消耗が少なく、二極スパークプラグBは、径大部34を設けたことによる、中心電極3の耐火花消耗性の低下は殆ど無い。
【0022】
本発明の第3実施例(請求項に対応)を図6及び図7に基づいて説明する。
二極スパークプラグCは、以下の点が二極スパークプラグAと異なる。
【0023】
ニッケル合金材の内部に良熱伝導性の銅を封入した中心電極3は、厚みT3 =0.3mm、外径d3 =φ2.5の径大部35を中心電極先端32に形成している。尚、径大部31以外の中心電極外径d1 はφ2.0である。尚、径大部35は、貴金属材(Pt- Ir合金)をレーザー溶接LBにより形成している。
【0024】
本実施例の二極スパークプラグCは、以下の利点を有する。
幅の狭い径大部31を中心電極先端32に形成することにより、径大部35を設けない従来品に比べ径大部付きスパークプラグは、耐久性が低下(電極消耗大)する。
【0025】
具体的には、4気筒、5000rpm×w.o.t. 200Hrで試験を行なったところ、図7に示す様に、径大部無しでニッケル合金からなる中心電極を有する従来品はギャップ消耗が0.2mmであるのに対し、(厚みT/軸方向距離L)=0.2の径大部付きのニッケル合金からなる中心電極を有するスパークプラグは、ギャップ消耗が0.4mmと大きく、着火性が改善される反面、耐久性が逆に悪化する。
しかし、径大部31を貴金属合金で形成した二極スパークプラグCは、貴金属材によりギャップ消耗が0.1mmと少なく、耐久性が改善される。
【0026】
本発明の第4実施例(請求項に対応)を図に基づいて説明する。
二極スパークプラグDは、以下の点が二極スパークプラグCと異なる。
【0027】
ニッケル合金材の内部に良熱伝導性の銅を封入した中心電極3は、厚みT4 =0.3mm、外径d3 =φ2.5の径大部36を中心電極先端32に形成している。尚、中心電極先端32の中心電極外径d1 はφ2.0であり、中心電極3の元径はφ2.5である。尚、径大部36は、レーザー溶接により形成した貴金属材(Pt- Ir合金)である。
本実施例の二極スパークプラグDは、二極スパークプラグCと同様、貴金属合金によりギャップ消耗が0.1mmと少なく、耐久性が改善される。
【0028】
本発明は、上記実施例以外に、つぎの実施態様を含む。
a.金具先端面11に突設される外側電極4の数は、二個以上(三極、四極)であっても良い。
b.径大部の貴金属材は、Pt、Pt- Ir- Ni合金、Pt- Rh合金、Au- Pd合金、Ir、Ir- Y2 3 合金、Ir- Rh合金等が使用できる。
【図面の簡単な説明】
【図1】本発明の第1実施例に係る二極スパークプラグの正面図である。
【図2】その二極スパークプラグにおいて、径差(φd2 −φd1 )と、A/Fリーンリミットとの関係を示すグラフである。
【図3】その二極スパークプラグにおいて、中心電極外径φd1 とギャップ消耗量との関係を示すグラフである。
【図4】その二極スパークプラグにおいて、(径大部の厚みT1 /放電面の軸方向距離L)と、A/Fリーンリミットとの関係を示すグラフである。
【図5】本発明の第2実施例に係る二極スパークプラグの正面図である。
【図6】本発明の第3実施例に係る二極スパークプラグの上面図(a)、及び正面図(b)である。
【図7】径大部無しの従来品、(厚みT/軸方向距離L)=0.2の径大部付きスパークプラグ、及び径大部31を貴金属合金で形成した二極スパークプラグCにおける各ギャップ消耗を示すグラフである。
【図8】本発明の第4実施例に係る二極スパークプラグの正面図である。
【図9】従来技術に係る二極スパークプラグの正面図である。
【図10】従来技術に係る二極スパークプラグの正面図である。
【符号の説明】
1 主体金具
2 絶縁碍子
3 中心電極
4 外側電極
11 金具先端面
21 軸孔
22 碍子先端面
23 碍子先端(碍子先端部)
31、34〜36 径大部
42 外側電極の先端上面
1 中心電極外径
2 径大部の外径
3 径大部の先端外径
1 〜T4 径大部の厚み
L 放電面の軸方向距離
A〜D 二極スパークプラグ(多極スパークプラグ)
[0001]
BACKGROUND OF THE INVENTION
The present invention relates to a multipolar spark plug mounted on an internal combustion engine.
[0002]
[Prior art]
As shown in FIG. 9, the metal shell 101, the insulator 103 with the shaft hole 102 fixed in the metal shell 101, the center electrode 104 fixed in the shaft hole 102 of the insulator 103, and the discharge surface 105 A multipolar spark plug 100 having a plurality of outer electrodes 107 facing the outer peripheral surface 106 of the center electrode 104 is conventionally known. As shown in FIG. 10, a multipolar spark plug 120 is also known in which a noble metal alloy part 108 is formed in the ignition part of the center electrode 104 to prevent electrode consumption.
[0003]
[Problems to be solved by the invention]
Multipolar spark plugs 100 and 110 having an outer electrode 107 whose discharge surface 105 is opposed to the outer peripheral surface 106 of the center electrode 104 (the axial distance k between the upper surface 107a of the outer electrode 107 and the center electrode 104 is -0.5 mm). In addition to the discharge surface front side 109 and the tip 111 of the tip outer peripheral surface 106 (discharge pattern α), the spark discharge occurs at the discharge surface rear side 112 and the base 113 side of the tip outer peripheral surface 106. This also occurs in the interval (discharge pattern β).
[0004]
The discharge of the discharge pattern β has a large flame extinguishing action by the outer electrode 107, and the ignitability is remarkably deteriorated (about 1 down in the evaluation of the A / F lean limit) as compared with the discharge of the discharge pattern α.
A / F lean limit:
A / F value of 10 misfire cycles at idling for 3 minutes and 1 cyl or more
An object of the present invention is to improve the ignitability of a multipolar spark plug having a plurality of outer electrodes whose discharge surfaces face the outer peripheral surface of the tip of the center electrode.
[0006]
[Means for Solving the Problems]
In order to solve the above problems, the present invention employs the following configuration.
(1) A cylindrical metal shell, an insulator with a shaft hole that is fixed in the metal shell so that the tip of the insulator protrudes from the metal tip surface of the metal shell, and an electrode tip from the insulator tip surface of the insulator A center electrode that is fixed in the shaft hole so as to project, and a plurality of outer electrodes that are bent so that the discharge surface faces the outer peripheral surface of the tip of the center electrode and protrudes from the tip of the metal fitting In the multipolar spark plug in which the axial distance between the top end surface of the outer electrode and the center electrode tip surface is set to -0.5 mm to 0.5 mm, the center electrode tip is formed with a large diameter over the entire circumference , a discharge surface, so as to perform spark discharge between the outer peripheral surface of the large diameter portion, the outer diameter d 2 of the large diameter portion, 0.2 mm to 1.0 mm larger set than the center electrode outer diameter d 1 , {(Large-diameter portion thickness T 1 ) / (discharge surface axial distance L)} is set to 0.3 or less. In addition, the rear end position of the large-diameter portion is located at a position where the discharge surface is formed in the axial direction , and the large-diameter portion is formed away from the insulator front end surface in the front end direction .
[0008]
( 2 ) The multipolar spark plug has the configuration of (1 ) above, and the large-diameter portion has its tip surface flush with the tip surface of the central electrode and the tip surface of the outer electrode.
( 3 ) A cylindrical metal shell, an insulator with a shaft hole that is fixed in the metal shell so that the tip of the insulator protrudes from the metal tip surface of the metal shell, and an electrode tip from the insulator tip surface of the insulator A center electrode that is fixed in the shaft hole so as to project, and a plurality of outer electrodes that are bent so that the discharge surface faces the outer peripheral surface of the tip of the center electrode and protrudes from the tip of the metal fitting In a multipolar spark plug in which the axial distance between the top surface of the outer electrode and the tip surface of the center electrode is set to -0.5 mm to 0.5 mm, the diameter increases over the entire circumference as the tip of the center electrode goes first. Formed in a large diameter portion of such a tapered shape, so as to perform a spark discharge between the discharge surface and the outer peripheral surface of the taper,
The outer diameter d 3 of this large diameter portion is set to be 0.2 mm to 1.0 mm larger than the center electrode outer diameter d 1 ,
{(Large-diameter portion thickness T 2 ) / (discharge surface axial distance L)} is set to 0.3 or less, and the rear end position of the taper is the formation position in the axial direction of the discharge surface. The large-diameter portion is positioned and spaced apart from the insulator tip surface in the tip direction.
(4 ) The multipolar spark plug has the configuration of (3 ) above, and the large-diameter portion has its tip surface flush with the tip surface of the center electrode and the tip surface of the outer electrode.
( 5 ) The multipolar spark plug has the structure of any one of the above (1) to ( 4 ), and the large-diameter portion is formed of a noble metal.
[0009]
[Operation and effect of the invention]
[About claim 1]
The center electrode tip formed on the large diameter over the entire circumference, the discharge surface and, to perform the spark discharge between the outer peripheral surface of the large diameter portion, the outer diameter d 2 of the large diameter portion, the center electrode outside Set larger than diameter d 1 by 0.2 mm to 1.0 mm, set {(thickness T 1 of large diameter portion) / (axial distance L of discharge surface)} to 0.3 or less, and large diameter portion The rear end position is located at the formation position in the axial direction of the discharge surface. The large diameter portion is formed away from the insulator tip surface in the tip direction.
In the state of (T 1 /L)≦0.3, ( large diameter outer diameter d 2 -center electrode outer diameter d 1 ) ≧ 0.2 mm, and the rear end position of the large diameter portion is the discharge surface. Since the air discharge can be performed between the discharge surface of the outer electrode and the outer peripheral surface of the large diameter tip of the tip formed on the center electrode, the A / F lean limit Is improved (about 1 improvement).
Further, if (the outer diameter d 2 of the large diameter portion−the outer diameter d 1 of the central electrode)> 1 mm, the temperature of the large diameter portion (the tip of the central electrode) becomes high and oxidation consumption increases, which is not suitable.
[0011]
[About claim 2 ]
The large diameter portion has its tip surface flush with the tip surface of the center electrode and the top surface of the outer electrode.
[About claim 3 ]
The center electrode tip formed over the entire circumference toward the previously large-diameter portion of the composed such tapered to a large diameter, the discharge surface, so as to perform spark discharge at between the outer peripheral surface of the tapered, this The outer diameter d 3 of the large diameter portion is set to be 0.2 mm to 1.0 mm larger than the outer diameter d 1 of the center electrode, and {(thickness T 2 of the large diameter portion) / (axial distance L of the discharge surface)} The rear end position of the taper is set to 0.3 or less, and is located at the formation position in the axial direction of the discharge surface. The large diameter portion is formed away from the insulator tip surface in the tip direction.
In the state of (T 1 /L)≦0.3, ( the outer diameter d 3 of the large diameter portion−the outer diameter d 1 of the center electrode) ≧ 0.2 mm, and the rear end position of the taper is the axis of the discharge surface Since the air discharge can be performed between the discharge surface of the outer electrode and the outer peripheral surface of the taper, the A / F lean limit is improved (about 1 improvement).
Further, if (the outer diameter d 3 of the large diameter portion−the outer diameter of the central electrode d 1 )> 1 mm, the temperature of the large diameter portion (center electrode tip) becomes high and the oxidation consumption increases, which is not suitable .
[ About claim 4 ]
The large diameter portion has its tip surface flush with the tip surface of the center electrode and the top surface of the outer electrode.
[About Claim 5 ]
By forming a narrow large diameter portion at the tip of the center electrode, durability is reduced (electrode consumption is large) as compared with the case where the large diameter portion is not provided.
However, durability is improved by forming a large diameter part with a noble metal.
[0012]
DETAILED DESCRIPTION OF THE INVENTION
The first embodiment of the present invention (Claim 1, 2 corresponds) will be described with reference to FIGS.
The bipolar spark plug A has a cylindrical metal shell 1, an insulator 2 with a shaft hole 21 fitted and fixed in the metal shell 1, and a center electrode tip 32 having a large-diameter portion 31. The center electrode 3 fixed in the shaft hole 21 so as to protrude from the outer periphery 22, and the outer side which is bent and protrudes from the front end surface 11 of the metal fitting so that the discharge surface 41 faces the outer peripheral surface 321 of the front end of the center electrode 3. Electrodes 4 and 4 are provided.
[0013]
The metal shell 1 is made of low carbon steel, and the outer electrodes 4 and 4 are welded to the metal tip surface 11. A screw 12 is threaded around the outer periphery of the front end of the metal shell 1 and is attached to a cylinder head (not shown) of the internal combustion engine via a gasket (not shown).
[0014]
The insulator 2 is made of ceramic mainly composed of alumina, and the seating surface is locked to a stepped portion (not shown) of the metal shell 1 via a packing (not shown). By crimping (not shown), the insulator tip 23 is fixed in the metal shell 1 so as to protrude from the metal tip surface 11 of the metal shell 1.
[0015]
The center electrode 3 in which good heat conductive copper is sealed inside the nickel alloy material has a large diameter portion 31 (cylindrical shape) having a thickness T 1 = 0.4 mm and an outer diameter d 2 = φ2.5 of the center electrode tip 32. Is formed. The outer diameter d 1 of the center electrode other than the large diameter portion 31 is φ2.0.
Further, the outer diameter d 2 of the large diameter portion 31 is made constant at φ2.5 and the thickness T 1 of the large diameter portion is made constant at 0.4 mm, and the diameter difference {(the outer diameter d 2 of the large diameter portion 31−the outer diameter d of the center electrode). 1 )} was varied between 0 mm and 1.3 mm, and as shown in FIG. 2, it was found that the A / F lean limit was improved by about 0.5 when the diameter difference was 0.2 mm or more.
However, when the diameter difference exceeds 1.0 mm (φd 1 <1.5 mm in this embodiment), as shown in FIG. 3, the temperature of the large diameter portion 31 becomes high and the gap consumption becomes large (oxidation). Therefore, the diameter difference is set in the range of 0.2 mm to 1.0 mm.
[0016]
The outer electrode 4 has a tip bent in an L shape and is formed of a nickel alloy material.
The discharge surface 41 of the outer electrode 4 is formed in an arcuate shape and is positioned coaxially with the opposed distal end outer peripheral surface 321.
In the present embodiment, the top end surface 42 of the outer electrode 4 and the center electrode front end surface 33 are set to be flush with each other (axial distance k = 0 mm).
[0017]
In this example, {(large diameter portion thickness T 1 ) / (discharge surface axial distance L)} ≈0.27.
In addition, the axial distance L of the discharge surface is fixed to 1.5 mm, and the ignition is performed by changing the thickness T 1 of the large diameter portion from 1.5 mm to 0.3 mm {(T 1 / L) from 1 to 0.2}. When the property was tested, as shown in FIG. 4, it was found that the A / F lean limit was improved by about 1 when (T 1 /L)≦0.3.
[0018]
The two-pole spark plug A of the present embodiment has the following advantages.
In the bipolar spark plug A, the center electrode tip 32 is formed to have a large diameter, and the outer diameter d 2 (φ2.5) of the large diameter portion 31 is 0.5 mm from the center electrode outer diameter d 1 (φ2.0). Largely set, {(thickness T 1 (0.4 mm) of large-diameter portion 31)} / {axial distance L (1.5 mm) of discharge surface} is set to about 0.27.
As a result, since the spark discharge occurs between the discharge surface front side 411 and the large diameter portion 31, it has been found that the A / F lean limit is improved by about 1 and the ignitability is maintained well.
In addition, since the diameter difference is 0.5 mm, the temperature of the large diameter portion (center electrode tip) does not increase remarkably, so that the electrode tip portion is less consumed by spark discharge. There is almost no reduction in the spark wear resistance of the center electrode 3 due to the provision.
[0019]
A second embodiment of the present invention (corresponding to claims 3 and 4 ) will be described with reference to FIG.
The bipolar spark plug B is different from the bipolar spark plug A in the following points.
[0020]
A conical large-diameter portion 34 is formed at the center electrode tip 32 so as to increase in diameter as it goes ahead. The center electrode outer diameter d 1 is φ2, the thickness T 2 of the large diameter portion 34 is 0.4 mm, and the outer diameter d 3 is φ2.5.
[0021]
The two-pole spark plug B of the present embodiment has the following advantages.
In the bipolar spark plug B, a conical large diameter portion 34 is formed at the center electrode tip 32 so as to increase in diameter toward the front.
As a result, since the spark discharge occurs between the discharge surface front side 411 and the large diameter portion 34, it has been found that the A / F lean limit is improved by about 1 and the ignitability is well maintained.
Further, since the diameter difference (φd 2 −φd 1 ) is 0.5 mm, the temperature of the large diameter portion (center electrode tip) does not increase remarkably, so that the electrode tip portion is less consumed by spark discharge, and the bipolar spark plug B In this case, there is almost no reduction in the spark wear resistance of the center electrode 3 due to the provision of the large diameter portion 34.
[0022]
A third embodiment (corresponding to claim 5 ) of the present invention will be described with reference to FIGS.
The two-pole spark plug C is different from the two-pole spark plug A in the following points.
[0023]
The center electrode 3 in which good heat conductive copper is sealed inside the nickel alloy material has a large diameter portion 35 with a thickness T 3 = 0.3 mm and an outer diameter d 3 = φ2.5 at the center electrode tip 32. Yes. The outer diameter d 1 of the center electrode other than the large diameter portion 31 is φ2.0. The large diameter portion 35 is made of a noble metal material (Pt—Ir alloy) by laser welding LB.
[0024]
The two-pole spark plug C of the present embodiment has the following advantages.
By forming the narrow large diameter portion 31 at the center electrode tip 32, the spark plug with the large diameter portion is less durable than the conventional product without the large diameter portion 35 (large electrode consumption).
[0025]
Specifically, 4-cylinder, 5000 rpm × w. o. t. When a test was conducted at 200 hours, as shown in FIG. 7, the conventional product having a central electrode made of a nickel alloy without a large diameter portion had a gap consumption of 0.2 mm, whereas (thickness T / axial distance). A spark plug having a center electrode made of a nickel alloy with a large diameter portion of L) = 0.2 has a gap consumption as large as 0.4 mm, which improves ignitability but deteriorates durability.
However, the bipolar spark plug C in which the large-diameter portion 31 is formed of a noble metal alloy has a gap consumption as small as 0.1 mm due to the noble metal material, and the durability is improved.
[0026]
Fourth embodiment of the present invention (corresponding to claim 5) will be described with reference to FIG.
The bipolar spark plug D differs from the bipolar spark plug C in the following points.
[0027]
The central electrode 3 in which copper having good thermal conductivity is sealed inside the nickel alloy material has a large diameter portion 36 having a thickness T 4 = 0.3 mm and an outer diameter d 3 = φ2.5 at the center electrode tip 32. Yes. The center electrode outer diameter d 1 of the center electrode tip 32 is φ2.0, and the original diameter of the center electrode 3 is φ2.5. The large diameter portion 36 is a noble metal material (Pt—Ir alloy) formed by laser welding.
Like the two-pole spark plug C, the bipolar spark plug D of this embodiment has a gap consumption as low as 0.1 mm by the noble metal alloy, and the durability is improved.
[0028]
The present invention includes the following embodiments in addition to the above embodiments.
a. The number of outer electrodes 4 protruding from the metal fitting tip surface 11 may be two or more (three poles, four poles).
b. Pt, Pt—Ir—Ni alloy, Pt—Rh alloy, Au—Pd alloy, Ir, Ir—Y 2 O 3 alloy, Ir—Rh alloy and the like can be used as the noble metal material having a large diameter.
[Brief description of the drawings]
FIG. 1 is a front view of a bipolar spark plug according to a first embodiment of the present invention.
FIG. 2 is a graph showing a relationship between a diameter difference (φd 2 −φd 1 ) and an A / F lean limit in the bipolar spark plug.
FIG. 3 is a graph showing the relationship between the center electrode outer diameter φd 1 and the gap consumption in the bipolar spark plug.
FIG. 4 is a graph showing a relationship between (thickness T 1 of large diameter portion / axial distance L of discharge surface) and A / F lean limit in the bipolar spark plug.
FIG. 5 is a front view of a bipolar spark plug according to a second embodiment of the present invention.
FIG. 6 is a top view (a) and a front view (b) of a bipolar spark plug according to a third embodiment of the present invention.
FIG. 7 shows a conventional product without a large diameter portion, a spark plug with a large diameter portion (thickness T / axial distance L) = 0.2, and a bipolar spark plug C in which the large diameter portion 31 is made of a noble metal alloy. It is a graph which shows each gap consumption.
FIG. 8 is a front view of a bipolar spark plug according to a fourth embodiment of the present invention.
FIG. 9 is a front view of a bipolar spark plug according to the prior art.
FIG. 10 is a front view of a bipolar spark plug according to the prior art.
[Explanation of symbols]
DESCRIPTION OF SYMBOLS 1 Metal shell 2 Insulator 3 Center electrode 4 Outer electrode 11 Metal fitting front end surface 21 Axial hole 22 Insulator front end surface 23 Insulator front end (end of front end)
31, 34 to 36 Diameter large portion 42 Outer electrode tip upper surface d 1 Center electrode outer diameter d 2 Diameter larger outer diameter d 3 Diameter larger diameter tip outer diameter T 1 to T 4 Diameter larger thickness L Discharge surface Axial distance A to D Bipolar spark plug (multipolar spark plug)

Claims (5)

筒状の主体金具と、
碍子先端が前記主体金具の金具先端面から突出する様に主体金具内に固定される軸孔付の絶縁碍子と、
該絶縁碍子の碍子先端面から電極先端が突出する様に軸孔内に固定される中心電極と、
放電面が前記中心電極の先端外周面と対向する様に屈曲して前記金具先端面に突設される複数の外側電極とを備え、
該外側電極の先端上面と中心電極先端面との軸方向距離を−0.5mm〜0.5mmに設定した多極スパークプラグにおいて、
中心電極先端を全周にわたり径大に形成して、前記放電面と、この径大部の外周面との間で火花放電を行うようにし、この径大部の外径dを、中心電極外径dより0.2mm〜1.0mm大きく設定し、
{(径大部の厚みT)/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、前記径大部の後端位置は、前記放電面の軸方向における形成位置に位置し、
前記径大部は、前記碍子先端面から先端方向に離間して形成されることを特徴とする多極スパークプラグ。
A cylindrical metal shell,
An insulator with a shaft hole that is fixed in the metal shell so that the metal tip protrudes from the metal tip surface of the metal shell,
A center electrode fixed in the shaft hole so that the electrode tip protrudes from the insulator tip surface of the insulator;
A plurality of outer electrodes that are bent so that a discharge surface faces the outer peripheral surface of the front end of the center electrode and projecting from the front end surface of the metal fitting,
In the multipolar spark plug in which the axial distance between the top end surface of the outer electrode and the center electrode tip surface is set to -0.5 mm to 0.5 mm,
The center electrode tip formed on the large diameter over the entire circumference, said a discharge surface, so as to perform spark discharge between the outer peripheral surface of the large diameter portion, the outer diameter d 2 of the large diameter portion, the center electrode The outer diameter d 1 is set larger by 0.2 mm to 1.0 mm,
{(Large-diameter portion thickness T 1 ) / (discharge surface axial distance L)} is set to 0.3 or less, and the rear end position of the large-diameter portion is formed in the axial direction of the discharge surface. located in position,
The multi- diameter spark plug is characterized in that the large-diameter portion is formed apart from the insulator tip surface in the tip direction .
前記径大部は、自身の先端面を前記中心電極の先端面及び前記外側電極の先端上面と面一とすることを特徴とする請求項1記載の多極スパークプラグ。2. The multipolar spark plug according to claim 1, wherein the large-diameter portion has a leading end surface flush with a leading end surface of the center electrode and a leading end surface of the outer electrode . 筒状の主体金具と、
碍子先端が前記主体金具の金具先端面から突出する様に主体金具内に固定される軸孔付の絶縁碍子と、
該絶縁碍子の碍子先端面から電極先端が突出する様に軸孔内に固定される中心電極と、
放電面が前記中心電極の先端外周面と対向する様に屈曲して前記金具先端面に突設される複数の外側電極とを備え、
該外側電極の先端上面と中心電極先端面との軸方向距離を−0.5mm〜0.5mmに設定した多極スパークプラグにおいて、
中心電極先端を先に行くほど全周にわたり径大になる様なテーパ形状の径大部に形成して、前記放電面と、このテーパの外周面との間にて火花放電を行うようにし、この径大部の外径d を、中心電極外径d より0.2mm〜1.0mm大きく設定し、
{(径大部の厚みT )/(放電面の軸方向距離L)}を0.3以下に設定し、且つ、前記テーパの後端位置は、前記放電面の軸方向における形成位置に位置し、
前記径大部は、前記碍子先端面から先端方向に離間して形成されることを特徴とする多極スパークプラグ。
A cylindrical metal shell,
An insulator with a shaft hole that is fixed in the metal shell so that the metal tip protrudes from the metal tip surface of the metal shell,
A center electrode fixed in the shaft hole so that the electrode tip protrudes from the insulator tip surface of the insulator;
A plurality of outer electrodes that are bent so that a discharge surface faces the outer peripheral surface of the front end of the center electrode and projecting from the front end surface of the metal fitting,
In the multipolar spark plug in which the axial distance between the top end surface of the outer electrode and the center electrode tip surface is set to -0.5 mm to 0.5 mm,
Formed in the large diameter portion of the taper shape so that the diameter increases over the entire circumference as the tip of the center electrode goes first, so that spark discharge is performed between the discharge surface and the outer peripheral surface of the taper, The outer diameter d 3 of this large diameter portion is set to be 0.2 mm to 1.0 mm larger than the center electrode outer diameter d 1 ,
{( Large- diameter portion thickness T 2 ) / (discharge surface axial distance L)} is set to 0.3 or less, and the rear end position of the taper is the formation position in the axial direction of the discharge surface. Position to,
The multi- diameter spark plug is characterized in that the large-diameter portion is formed apart from the insulator tip surface in the tip direction .
前記径大部は、自身の先端面を前記中心電極の先端面及び前記外側電極の先端上面と面一とすることを特徴とする請求項3記載の多極スパークプラグ。 4. The multipolar spark plug according to claim 3 , wherein the large-diameter portion has its front end surface flush with the front end surface of the center electrode and the upper end surface of the outer electrode . 前記径大部を貴金属で形成したことを特徴とする請求項1乃至請求項4の何れかに記載の多極スパークプラグ。The multipolar spark plug according to any one of claims 1 to 4, wherein the large-diameter portion is formed of a noble metal .
JP14691796A 1996-06-10 1996-06-10 Multipolar spark plug Expired - Fee Related JP3874840B2 (en)

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US6617706B2 (en) 1998-11-09 2003-09-09 Ngk Spark Plug Co., Ltd. Ignition system
JP4696981B2 (en) * 2006-03-14 2011-06-08 株式会社デンソー Spark plug for internal combustion engine
JP5923011B2 (en) 2012-08-08 2016-05-24 日本特殊陶業株式会社 Spark plug
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